首页> 外文期刊>Journal of Geophysical Research. Biogeosciences >Open-path Fourier transform infrared spectroscopy of SO2: An empirical error budget analysis, with implications for volcano monitoring
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Open-path Fourier transform infrared spectroscopy of SO2: An empirical error budget analysis, with implications for volcano monitoring

机译:SO2的开放路径傅立叶变换红外光谱:经验误差预算分析,对火山监测具有重要意义

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Fourier transform infrared (FTIR) spectroscopy is increasingly used as a tool for volcano monitoring, allowing measurement of a range of gases including SO2, HCl, and HF. Retrievals are complicated, since the open-path spectra are typically pressure broadened and contaminated by atmospheric H2O, CO2, etc., and the field instruments employed have low spectral resolution (similar to0.5 cm(-1)). We present a detailed analysis of 0.5 cm(-1) resolution infrared spectra of certified SO2 mixtures in order to assess the sensitivity of such instruments and the retrieval procedures used for field spectra. We investigate the effects on retrievals of the SO2 v(1)+v(3) band (centered at 2499.87 cm(-1)) of varying the retrieval spectral window and background fit, and of errors in the instrument line shape (ILS), temperature, and pressure. Largest deviations in retrieved amounts result from errors in the ILS (1.5-2.1%) and temperature (2.9-3.0% for a 10 K change). The total error estimate associated with these factors is similar to the uncertainty in line parameter data. Overall, the retrieval accuracy was better than 5%, except for the lowest concentration spectra. Errors calculated in the retrieval algorithm were conservative enough to cover these accuracy limits. We estimate that in field spectra, SO2 concentrations above 2.5 x 10(17) molecules cm(-2) (100 PPM m at room temperature and pressure) should be measurable with high accuracy. These results are encouraging in the context of deployment of open-path FTIR spectrometers for surveillance of active volcanoes, and the findings are equally applicable to other open-path measurements of SO2 for example from anthropogenic sources. [References: 25]
机译:傅里叶变换红外(FTIR)光谱越来越多地用作火山监测的工具,可以测量包括SO2,HCl和HF在内的多种气体。检索操作很复杂,因为开放路径谱通常会被压力加宽并被大气中的H2O,CO2等污染,并且所使用的现场仪器具有较低的谱分辨率(类似于0.5 cm(-1))。我们目前对经过认证的SO2混合物的0.5 cm(-1)分辨率红外光谱进行详细分析,以评估此类仪器的灵敏度以及用于现场光谱的检索程序。我们调查了SO2 v(1)+ v(3)波段(以2499.87 cm(-1)为中心)的检索的影响,该影响改变了检索光谱窗口和背景拟合以及仪器线形(ILS)的误差,温度和压力。回收量的最大偏差是由于ILS(1.5-2.1%)和温度的误差(对于10 K的变化为2.9-3.0%)引起的。与这些因素相关的总误差估计类似于线路参数数据中的不确定性。总体而言,除了最低的浓度光谱外,检索精度均优于5%。在检索算法中计算出的误差足够保守,可以覆盖这些精度限制。我们估计在现场光谱中,应该可以高精度测量高于2.5 x 10(17)分子cm(-2)(在室温和压力下为100 PPM m)的SO2浓度。这些结果在部署开放路径的FTIR光谱仪以监测活火山的情况下令人鼓舞,并且这些发现同样适用于其他SO2的开放路径测量,例如来自人为来源的SO2。 [参考:25]

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